干扰(通信)
表面等离子共振
灵敏度(控制系统)
材料科学
纳米结构
等离子体子
光电子学
光学传感
检出限
石墨烯
信号(编程语言)
选择性
分析物
理论(学习稳定性)
极限(数学)
纳米技术
共振(粒子物理)
计算机科学
化学
接口(物质)
生物传感器
纳米传感器
探测理论
表面等离子体激元
信号强度
电子工程
生物系统
表面等离子体子
胶体金
适体
工作(物理)
堆栈(抽象数据类型)
作者
Olabisi Abdullahi Onifade,Mundzir Abdullah,Muhammad Hafiz Abu Bakar,Mohd Adzir Mahdi,Ahmad Shukri Muhammad Noor
标识
DOI:10.1038/s41598-026-53629-7
摘要
Quantitation of biological analytes at point-of-care remains challenging, particularly in complex media with competing species. Uric acid (UA), a clinically significant bioanalyte, is especially difficult to measure due to interference and the limited stability of conventional sensors. This work presents a non-enzymatic dual-mode plasmonic sensing strategy that integrates propagating surface plasmons with localized nanoparticle-driven resonances to enhance interaction strength and improve optical signal definition. The sensing interface features a multilayer nanostructure of gold film, APTES-modified gold nanoparticles, and reduced graphene oxide, providing reinforced light-matter interaction and selective surface affinity. The sensor achieves a high sensitivity of 0.2258°/(mg/dL), a low detection limit of 0.0446 mg/dL, and a high binding affinity of 1451.85 (mg/dL)⁻¹ across UA concentrations of 1-12 mg/dL. Selectivity studies show a pronounced resonance shift of 1.6645°, with interference suppressed to ~ 10% even in mixed solutions. Long-term performance assessments reveal less than 0.3% drift after 30 days, 97.2% sensitivity retention following 10 regeneration cycles, and stability above 90% maintained over 90 days at temperatures exceeding 25 °C. These results demonstrate a robust, regenerable, and interference-resistant platform suitable for real-time UA monitoring and adaptable to other clinically relevant bioanalytes.
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